Radiation Effect on the Chemical Potential of Model Liquids
DOI:
https://doi.org/10.15407/ujpe70.11.769Keywords:
intermolecular interaction, physics of liquids, radiation effect, thermodynamic propertiesAbstract
Irradiation, in particular with electromagnetic radiation, is one of the factors affecting the molecular mechanisms of physiological processes in the human body. In most cases, this influence manifests itself via a change in the chemical composition (radiolysis) or local heating, which invokes nonequilibrium processes. Modern approaches to studying these effects are based on modeling changes in the configurational entropy and chemical potentials of liquids under irradiation. Within this framework, a liquid is considered a two-component solution of excited and unexcited molecules that interact through forces of different types. The goal of this work is to develop some model interaction potentials between the excited and unexcited molecules. It is shown that the interaction between the excited particles is short-range and repulsive. The interaction between the excited and unexcited particles is long-range and can be either attractive or repulsive. Using the thermodynamic perturbation theory, a change in the chemical potential of excited particles with respect to that of unexcited ones is estimated.
References
1. P. Abgrall, Nam-Trung Nguyen. Nanofluidics (Artech House, 2009) [ISBN: 978-1-59-693350-7].
2. I.I. Adamenko, L.A. Bulavin. Physics of Liquids and Liquid Systems (ASMA, 2006) (in Ukrainian) [ISBN: 966-7653-32-3].
3. J. Berthier, P. Silberzan. Microfluidics for Biotechnology. 2nd edition (Artech House, 2010) [ISBN: 978-1-59-693444-3].
4. H. Bruus. Theoretical Microfluidics (Oxford University Press, 2008).
5. I. Chopra, J. Sirohi. Smart Structures Theory (Cambridge University Press, 2013) [ISBN: 978-1-13-902516-4].
https://doi.org/10.1017/CBO9781139025164
6. J. Berthier. Microdrops and Digital Microfluidics (William Andrew Publishing, 2008) [ISBN: 978-0-8155-1544-9].
7. J.N. Israelachvili. Intermolecular and Surface Forces. 3rd edition (Academic Press, 2011) [ISBN: 978-0-12-391927-4].
8. I.G. Kaplan. Intermolecular Interactions: Physical Picture, Computational Methods and Model Potentials (John Wiley and Sons, 2006) [ISBN: 978-0-47-086332-9].
https://doi.org/10.1002/047086334X
9. G. Choppin, J.-O. Liljenzin, J. Rydberg, Ch. Ekberg. Radiochemistry and Nuclear Chemistry. 4th edition (Academic Press, 2013) [ISBN: 978-0-12-405897-2].
10. J.I. Castor. Radiation Hydrodynamics (Cambridge University Press, 2004) [ISBN: 0521833094].
https://doi.org/10.1017/CBO9780511536182
11. G.C. Pomraning. Equations of Radiation Hydrodynamics (Pergamon Press, 1973) [ISBN: 0486445992].
12. L.C. Woods. The Thermodynamics of Fluid Systems (Clarendon Press, 1975) [ISBN: 978-0198561255].
13. Guangxin Lv, Yaodong Tu, J.H. Zhang, Gang Chen. Photomolecular effect: Visible light interaction with air-water interface. Proc. Natl. Acad. Sci. USA 121 e2320844121 (2024).
https://doi.org/10.1073/pnas.2320844121
14. A.V. Brytan, G.M. Verbinska, V.M. Sysoev, V.L. Karbovskiy, T.V. Kleshchonok. The liquid droplets evaporation for low pressure's values under low-power irradiation with different frequencies at the optical range. Ukr. J. Phys. 56, 456 (2011).
15. O.V. Korobko, A.V. Brytan, G.M. Verbinska, D.A. Gavryushenko. Effect of ultraviolet radiation on evaporation of suspended alcohol droplets. Ukr. J. Phys. 60, 318 (2015).
https://doi.org/10.15407/ujpe60.04.0318
16. L.A. Bulavin, A.V. Brytan, G.M. Verbinska, Ya.O. Stepowyi. Model for evaporation of droplets of ideal alcohol solutions in diffusive and transient regimes. Ukr. J. Phys. 67, 592 (2022).
https://doi.org/10.15407/ujpe67.8.592
17. L.A. Bulavin, K.V. Cherevko, D.A. Gavryushenko, V.M. Sysoev, T.S. Vlasenko Radiation influence on the temperature-dependent parameters of fluids. Phys. Rev. E 93, 032133 (2016).
https://doi.org/10.1103/PhysRevE.93.032133
18. D.A. Gavryushenko, K.V. Taradii. Influence of radiation on physical properties of liquids. Ukr. J. Phys. 60, 763 (2015).
https://doi.org/10.15407/ujpe60.08.0764
19. N. Atamas, D. Gavryushenko, V. Bardik, K. Taradii, M. Lazarenko, O. Alekseev, J.R. Gearheart, A. Miroshnichenko, G. Taranyik. The influence of radiation emission on the thermodynamic and structural dynamic properties of liquid biosystems. Pramana J. Phys. 94, 77 (2020).
https://doi.org/10.1007/s12043-020-01946-5
20. A. Ben-Naim. Molecular Theory of Solutions (Oxford University Press, 2006) [ISBN: 978-0199299690].
https://doi.org/10.1093/oso/9780199299690.001.0001
21. M. Bostrom, B.W. Ninham. Atomic resonance interaction in dielectric media. Phys. Rev. A 69, 054701 (2004).
https://doi.org/10.1103/PhysRevA.69.054701
22. C.G. Gray, K.E. Gubbins. Theory of Molecular Liquids. Vol. 1: Fundamentals (Oxford University Press, 1984) [ISBN: 0-19-855602-0].
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